291{
295
297 typedef JParallelFileScanner_t::multi_pointer_type multi_pointer_type;
301
303 JLimit_t& numberOfEvents = inputFile.getLimit();
304 string detectorFile;
305 JCalibration_t calibrationFile;
306 double Tmax_s;
307 string pdfFile;
309 bool overwriteDetector;
312 int number_of_iterations = 1000;
313 int number_of_extra_steps = 0;
314 double epsilon = 1.0e-4;
315 double T_ns = 2.5;
316 size_t threads;
318
319 parameters.
ZMin_m = -1.0e4;
320 parameters.
ZMax_m = +1.0e4;
321
322 const int DEFAULT_ID = -1;
323
324 try {
325
327
332
333 JParser<> zap(
"Program to determine string or optical module time calibrations.");
334
342 zap[
'A'] =
make_field(overwriteDetector,
"overwrite detector file provided through '-a' with fitted time offsets.");
346 zap[
'N'] =
make_field(threads,
"number of threads") = 1;
348
349 zap(argc, argv);
350 }
351 catch(const exception& error) {
352 FATAL(error.what() << endl);
353 }
354
355
356 if (strings.empty() == modules.empty()) {
357 FATAL(
"Set either strings (option -S) or modules (option -M)." << endl);
358 }
359
361
362 try {
364 }
367 }
368
369 unique_ptr<JDynamics> dynamics;
370
371 try {
372
374
375 dynamics->load(calibrationFile);
376 }
377 catch(const exception& error) {
378 if (!calibrationFile.empty()) {
380 }
381 }
382
384
385 NOTICE(
"Reading PDFs... " << flush);
386
388
390
391 JRegressor_t::debug =
debug;
392 JRegressor_t::Vmax_npe = parameters.
VMax_npe;
393 JRegressor_t::MAXIMUM_ITERATIONS = parameters.
NMax;
394
395
396
397 NOTICE(
"Reading data" << endl);
398
400
402
405
407
409
410 for (JParallelFileScanner_t in(*i); (skip -= in.skip(skip)) == 0 && in.hasNext() && counter != numberOfEvents; ++counter) {
411
412 STATUS(
"event: " << setw(10) << counter <<
'\r');
DEBUG(endl);
413
414 multi_pointer_type ps = in.next();
415
418
419 summary.update(*tev);
420
421 if (dynamics) {
422 dynamics->update(*tev);
423 }
424
426
427 if (evt->begin() != __end) {
428
430
432
433 buildL0(*tev, router, true, back_inserter(dataL0));
434
436
440
444 }
445
447
448
449
451
452 for (vector<JHitL0>::const_iterator i = dataL0.begin(); i != dataL0.end(); ++i) {
453
454 JHitW0 hit(*i, summary.getRate(i->getPMTIdentifier(), parameters.
R_Hz));
455
456 hit.rotate(R);
457
458 if (match(hit)) {
459 buffer.push_back(hit);
460 }
461 }
462
463
464
466
467 buffer_type::const_iterator __end = unique(buffer.begin(), buffer.end(), equal_to<JDAQPMTIdentifier>());
468
469
470
472
473 for (buffer_type::const_iterator hit = buffer.begin(); hit != __end; ++hit) {
474
475 const JModule& module = router.getModule(hit->getModuleID());
476
477 if (!strings.empty()) {
map[module.
getString()].push_back(*hit); }
478 if (!modules.empty()) {
map[module.
getID()] .push_back(*hit); }
479 }
480
481 data.push_back({
map, tz,
true});
482 }
483 }
484 }
487
488
489
490
491 JGradient fit(number_of_iterations, number_of_extra_steps, epsilon, 3);
492
495
498
500
501 const double chi2 = fit(perth);
502
503 STATUS(
"result: " <<
FIXED(12,6) << chi2 <<
' ' << setw(6) << fit.numberOfIterations << endl);
504
505 for (size_t i = 0; i != fit.size(); ++i) {
506 {
508
509 if (p != NULL) {
STATUS(fit[i].name <<
' ' <<
FIXED(9,3) << p->
t0 <<
" [ns]" << endl); }
510 }
511 }
512
513
514 if (overwriteDetector) {
515
517
519
520 for (size_t i = 0; i != fit.size(); ++i) {
521
523
524 if (p != NULL) {
526 }
527 }
528
530
531 for (JDetector::iterator module =
detector.begin(); module !=
detector.end(); ++module) {
532
533 if (!module->empty()) {
534
540 module->getPMT(pmt).addT0(p->second - t0);
541 }
542 }
543 }
544 }
545
546 NOTICE(
"Store calibration data on file " << detectorFile << endl);
547
549 }
550}
#define DEBUG(A)
Message macros.
#define make_field(A,...)
macro to convert parameter to JParserTemplateElement object
#define MAKE_STRING(A)
Make string.
#define gmake_property(A)
macros to convert (template) parameter to JPropertiesElement object
int getString() const
Get string number.
Router for direct addressing of module data in detector data structure.
Data structure for a composite optical module.
Utility class to parse parameter values.
Data structure for set of track fit results.
Data structure for track fit results with history and optional associated values.
const std::vector< double > & getW() const
Get associated values.
double getT() const
Get time.
Data structure for fit of straight line paralel to z-axis.
int getID() const
Get identifier.
Utility class to parse command line options.
Auxiliary class for a hit with background rate value.
General purpose class for object reading from a list of file names.
General purpose class for parallel reading of objects from a single file or multiple files.
File router for fast addressing of summary data.
static const int JSTART_ZMAX_M
end position of track see JRECONSTRUCTION::JMuonStart
static const int JSTART_LENGTH_METRES
distance between projected positions on the track of optical modules for which the response does not ...
static const int JSTART_ZMIN_M
start position of track see JRECONSTRUCTION::JMuonStart
JDirection3D getDirection(const Vec &dir)
Get direction.
JPosition3D getPosition(const Vec &pos)
Get position.
JTOOLS::JRange< double > JTimeRange
Type definition for time range (unit [s]).
void load(const std::string &file_name, JDetector &detector)
Load detector from input file.
void store(const std::string &file_name, const JDetector &detector)
Store detector to output file.
std::set< int > getStringIDs(const JDetector &detector)
Get list of strings identifiers.
std::set< int > getModuleIDs(const JDetector &detector, const bool option=false)
Get list of modules identifiers.
JTOOLS::JRange< double > JZRange
const array_type< JValue_t > & get_values(const std::map< JKey_t, JValue_t, JComparator_t, JAllocator_t > &data)
Method to create array of values of map.
std::iterator_traits< T >::value_type getAverage(T __begin, T __end)
Get average.
This name space includes all other name spaces (except KM3NETDAQ, KM3NET and ANTARES).
bool qualitySorter(const JFit &first, const JFit &second)
Comparison of fit results.
Long64_t counter_type
Type definition for counter.
KM3NeT DAQ data structures and auxiliaries.
static const int NUMBER_OF_PMTS
Total number of PMTs in module.
Auxiliary data structure for sequence of same character.
Auxiliary data structure for floating point format specification.
Data structure for measured coincidence rates of all pairs of PMTs in optical module.
Dynamic detector calibration.
Auxiliary class to test history.
Auxiliary class to match data points with given model.
Auxiliary data structure for editable parameter.
Template data structure for storage of internal data.
Auxiliary class for recursive type list generation.
Empty structure for specification of parser element that is initialised (i.e. does not require input)...
Auxiliary class for editing time offset.
double t0
time offset [ns]
Data structure for fit parameters.
double TTS_ns
transition-time spread [ns]
double TMin_ns
minimal time w.r.t. Cherenkov hypothesis [ns]
double roadWidth_m
road width [m]
double TMax_ns
maximal time w.r.t. Cherenkov hypothesis [ns]
double VMax_npe
maximum number of of photo-electrons
double ZMax_m
maximal z-positon [m]
double ZMin_m
minimal z-positon [m]
int NMax
maximum number of iterations
double R_Hz
default rate [Hz]
Auxiliary data structure for chi2 function object.
Auxiliary class for defining the range of iterations of objects.
static counter_type max()
Get maximum counter value.
Auxiliary data structure for sorting of hits.